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Updated: May 31, 2026

The Use of Pharmacological-challenge fMRI in Pre-clinical Research: Application to the 5-HT System
Published on: April 25, 2012
Can Functional Magnetic Resonance Imaging Improve Success Rates in CNS Drug Discovery?
David Borsook1, Richard Hargreaves, Lino Becerra
1Center for Pain and the Brain, MGH, McLean and Children's Hospitals, Harvard Medical School And Merck Research Laboratories.
Abstract:
INTRODUCTION: The bar for developing new treatments for CNS disease is getting progressively higher and fewer novel mechanisms are being discovered, validated and developed. The high costs of drug discovery necessitate early decisions to ensure the best molecules and hypotheses are tested in expensive late stage clinical trials. The discovery of brain imaging biomarkers that can bridge preclinical to clinical CNS drug discovery and provide a 'language of translation' affords the opportunity to improve the objectivity of decision-making. AREAS COVERED: This review discusses the benefits, challenges and potential issues of using a science based biomarker strategy to change the paradigm of CNS drug development and increase success rates in the discovery of new medicines. The authors have summarized PubMed and Google Scholar based publication searches to identify recent advances in functional, structural and chemical brain imaging and have discussed how these techniques may be useful in defining CNS disease state and drug effects during drug development. EXPERT OPINION: The use of novel brain imaging biomarkers holds the bold promise of making neuroscience drug discovery smarter by increasing the objectivity of decision making thereby improving the probability of success of identifying useful drugs to treat CNS diseases. Functional imaging holds the promise to: (1) define pharmacodynamic markers as an index of target engagement (2) improve translational medicine paradigms to predict efficacy; (3) evaluate CNS efficacy and safety based on brain activation; (4) determine brain activity drug dose-response relationships and (5) provide an objective evaluation of symptom response and disease modification.
Insights
Brain imaging biomarkers offer a new approach to central nervous system (CNS) drug discovery. These tools enhance decision-making objectivity, aiming to improve the success rate of developing effective CNS disease treatments.
Area of Science:
- Neuroscience
- Pharmacology
- Medical Imaging
Background:
- Central nervous system (CNS) drug development faces increasing challenges with high costs and declining novel mechanism discovery.
- Objective decision-making in CNS drug discovery is crucial for efficient resource allocation in late-stage clinical trials.
Purpose of the Study:
- To review the benefits, challenges, and potential issues of employing a science-based biomarker strategy in CNS drug development.
- To explore how advances in functional, structural, and chemical brain imaging can aid in defining CNS disease states and drug effects.
Main Methods:
- Literature search of PubMed and Google Scholar for recent advances in brain imaging techniques.
- Analysis of functional, structural, and chemical brain imaging applications in drug development.
Main Results:
- Brain imaging biomarkers can serve as a 'language of translation' between preclinical and clinical CNS drug discovery.
- Functional imaging offers potential for pharmacodynamic markers, improved translational paradigms, efficacy/safety evaluation, dose-response relationships, and objective symptom/disease modification assessment.
Conclusions:
- Novel brain imaging biomarkers promise to enhance the objectivity of decision-making in neuroscience drug discovery.
- This approach aims to increase the success rate of identifying effective drugs for CNS diseases.
Related Concept Videos
Brain Imaging
These technologies include computerized axial tomography (CAT or CT scans), positron-emission tomography (PET scans), magnetic resonance imaging (MRI), functional magnetic resonance imaging (fMRI), and Transcranial Magnetic Stimulation (TMS).
Magnetic Resonance Imaging

